Publication | Closed Access
Phase space structure of triatomic molecules
104
Citations
51
References
1997
Year
Crystal StructureEngineeringBifurcation StructurePhase Space StructureChemistryElectronic StructureMolecular DynamicsVibronic InteractionFermi ResonanceQuantum MatterNonlinear VibrationPhysicsPhysical ChemistryBifurcation TheoryQuantum ChemistryCrystallographyQuantum HamiltonianNatural SciencesQuantum ChaosNonlinear Resonance
The bifurcation structure is investigated for a Hamiltonian for the three coupled nonlinear vibrations of a highly excited triatomic molecule. The starting point is a quantum Hamiltonian used to fit experimental spectra. This Hamiltonian includes 1:1 Darling–Dennison resonance coupling between the stretches, and 2:1 Fermi resonance coupling between the stretches and bend. A classical Hamiltonian is obtained using the Heisenberg correspondence principle. Surfaces of section show a pronounced degree of chaos at high energies, with a mixture of chaotic and regular dynamics. The large-scale bifurcation structure is found semianalytically, without recourse to numerical solution of Hamilton’s equations, by taking advantage of the fact that the spectroscopic Hamiltonian has a conserved polyad quantum number, corresponding to an approximate constant of the motion of the molecule. Bifurcation diagrams are analyzed for a number of molecules including H2O, D2O, NO2, ClO2, O3, and H2S.
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